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Facile method for the synthesis of a magnetic CNTs-C@Fe-chitosan composite and its application in tetracycline removal from aqueous solutions

机译:磁性CNTs-C @ Fe-壳聚糖复合材料的简便合成方法及其在水溶液中四环素去除中的应用

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A magnetic CNTs-C@Fe-chitosan composite (CNTs-C@Fe-CS) was prepared based on as-prepared carbon nanotubes (APCNTs). The metal nanoparticles in APCNTs could be utilized directly without any purification treatment, and the carbon shells provide an effective barrier against oxidation, acid dissolution, and movement of the MNPs, thus ensuring the long-term stability of CNTs-C@Fe-CS. The results showed that CNTs-C@Fe-CS contained more abundant oxygen and nitrogen containing functional groups after chitosan modification and the composite had good magnetization characteristics, even in acidic solutions. Then CNTs-C@Fe-CS was used as an adsorbent for the removal of tetracycline from aqueous solutions. Adsorption experiments indicated that CNTs-C@Fe-CS have a good adsorption capacity (q(e)) of tetracycline (104 mg g(-1)). The Freundlich isotherm model fitted the experimental data better than the Langmuir isotherm model. Kinetic regression results showed that the adsorption kinetics was more accurately represented by a pseudo second-order model. Intra-particle diffusion was involved in the adsorption, but it was not the only rate-controlling step. Cu2+ and humic acid could promote the adsorption of tetracycline on CNTs-C@Fe-CS. The CNTs-C@Fe-CS adsorbents could be effectively and quickly separated by applying an external magnetic field and the adsorption capacity was still maintained at 99.3 mg g(-1) after being used 10 times. Therefore, CNTs-C@Fe-CS is a promising magnetic nanomaterial for preconcentration and separation of organic pollutants for environmental remediation.
机译:基于制备的碳纳米管(APCNT),制备了磁性CNTs-C @ Fe-壳聚糖复合材料(CNTs-C @ Fe-CS)。 APCNT中的金属纳米颗粒无需任何纯化即可直接使用,碳壳为MNP的氧化,酸溶解和移动提供了有效的屏障,从而确保了CNT-C @ Fe-CS的长期稳定性。结果表明,壳聚糖改性后,CNTs-C @ Fe-CS含有较多的含氧和氮的官能团,即使在酸性溶液中,复合材料也具有良好的磁化特性。然后将CNTs-C @ Fe-CS用作吸附剂,用于从水溶液中去除四环素。吸附实验表明,CNTs-C @ Fe-CS具有良好的四环素(104 mg g(-1))吸附能力(q(e))。 Freundlich等温线模型比Langmuir等温线模型更好地拟合了实验数据。动力学回归结果表明,吸附动力学由伪二级模型更精确地表示。颗粒内扩散参与了吸附,但这不是唯一的速率控制步骤。 Cu2 +和腐殖酸可以促进四环素在CNTs-C @ Fe-CS上的吸附。 CNTs-C @ Fe-CS吸附剂可通过施加外磁场有效而快速地分离,使用10次后,吸附容量仍保持在99.3 mg g(-1)。因此,CNTs-C @ Fe-CS是一种有前途的磁性纳米材料,可用于有机污染物的预浓缩和分离,以进行环境修复。

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